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Modeling the optical behavior of complex organic media: From molecules to materials

  • Philip A. Sullivan
  • , Harrison L. Rommel
  • , Yoshinari Takimoto
  • , Scott R. Hammond
  • , Denise H. Bale
  • , Benjamin C. Olbricht
  • , Yi Liao
  • , John Rehr
  • , Bruce E. Eichingery
  • , Alex K.-Y. Jen
  • , Philip J. Reid
  • , Larry R. Dalton
  • , Bruce H. Robinson*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

For the past three decades, a full understanding of the electro-optic (EO) effect in amorphous organic media has remained elusive. Calculating a bulk material property from fundamental molecular properties, intermolecular electrostatic forces, and field-induced net acentric dipolar order has proven to be very challenging. Moreover, there has been a gap between ab initio quantum-mechanical (QM) predictions of molecular properties and their experimental verification at the level of bulk materials and devices. This report unifies QM-based estimates of molecular properties with the statistical mechanical interpretation of the order in solid phases of electric-field-poled, amorphous, organic dipolar chromophore-containing materials. By combining interdependent statistical and quantum mechanical methods, bulk material EO properties are predicted. Dipolar order in bulk, amorphous phases of EO materials can be understood in terms of simple coarse-grained force field models when the dielectric properties of the media are taken into account. Parameters used in the statistical mechanical modeling are not adjusted from the QM-based values, yet the agreement with the experimentally determined electro-optic coefficient is excellent. © 2009 American Chemical Society.
Original languageEnglish
Pages (from-to)15581-15588
JournalThe Journal of Physical Chemistry B
Volume113
Issue number47
DOIs
Publication statusPublished - 26 Nov 2009
Externally publishedYes

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